Water tank, ventilation area design method thereof, storage medium and electronic apparatus
A drainage device, a water tank, a ventilation area design method thereof, and a storage medium and an electronic apparatus, wherein the top of the water tank is provided with a ventilation slit, an area of which is adjustable in real time, and the bottom of the water tank is provided with a drainage orifice. A determination model for determining whether bubbles are generated during a drainage process of the water tank is established, and a relationship between an area of the drainage orifice and that of the ventilation slit, which satisfies the condition of no bubble generation during the drainage process, is established on this basis.
1 . A ventilation area design method for a water tank, comprising the steps of:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process;
S2: establishing a relationship between an area of a drainage orifice and an area of a ventilation slit of the water tank, which satisfies a condition of no bubble generation during the drainage process; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.
2 . The ventilation area design method of the water tank according to claim 1 , wherein in S1, a critical condition for bubbles entering the water tank via the drainage orifice at the bottom is determined based on a force balance at the drainage orifice at the bottom of the water tank, which is expressed as:
P
1
+
ρ
w
g
h
+
1
2
ρ
w
(
d
h
d
t
)
2
-
P
s
<
P
a
t
m
;
where P 1 is an air pressure (relative pressure) in a headspace of the water tank, Pa; P s is an additional pressure exerted at the drainage orifice by surface tension, Pa, and a magnitude of the additional pressure is determined based on an actual size of the drainage orifice of the water tank; P atm is a relative atmospheric pressure, Pa; ρ w is a density of water, kg/m 3 ; and g is acceleration of gravity, m/s 2 .
3 . The ventilation area design method of the water tank according to claim 1 , wherein in S2, a relationship between an air pressure in a headspace of the water tank and a water depth during the drainage process is determined based on mass conservation and energy conservation laws, and based on a critical condition for bubbles entering the water tank via the drainage orifice at the bottom, a condition expression of no bubble generation is obtained:
-
g
ρ
w
ρ
a
(
k
0
+
1
)
ε
0
2
A
0
2
ρ
w
ε
s
2
A
s
2
(
ζ
0
+
1
-
ε
0
2
A
0
2
A
1
2
)
+
ρ
a
(
k
0
+
1
)
ε
0
2
A
0
2
h
+
ρ
w
g
h
+
1
2
ρ
w
(
d
h
d
t
)
2
-
P
s
<
P
a
t
m
,
where ζ 0 is a local head loss coefficient of the drainage orifice at the bottom and is dimensionless; z 1 and z 2 are position heads of a water surface inside the water tank and at the drainage orifice, m; v 1 and v 2 are average flow velocities of the water surface inside the water tank and a water surface at the drainage orifice, m/s; ρ a is air density, kg/m 3 ; k 0 is a local head loss coefficient of the ventilation slit and is dimensionless; h is a water depth in the water tank, and ε s is a contraction coefficient of the ventilation slit and is dimensionless; and A 0 is an area of the drainage orifice at the bottom of the water tank, and A s is an area of the ventilation slit at the top of the water tank.
4 . A storage medium, wherein computer programs are stored in the storage medium, the computer programs comprising a sequence and program codes for controlling an execution process, the execution process comprising a ventilation area design method for a water tank, and the ventilation area design method comprises:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process;
S2: establishing a relationship between an area of a drainage orifice and an area of a ventilation slit of the water tank, which satisfies a condition of no bubble generation during the drainage process; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.
5 . An electronic apparatus, comprising: a memory, a processor, and a display module, wherein the memory has a storage medium, the processor runs computer programs stored in the storage medium, and the display module outputs a calculation result, wherein the computer programs comprises a sequence and program codes for controlling an execution process, the execution process comprises a ventilation area design method for a water tank, and the ventilation area design method comprises:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process;
S2: establishing a relationship between an area of a drainage orifice and an area of a ventilation slit of the water tank, which satisfies a condition of no bubble generation during the drainage process; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.
6 . A storage medium, wherein computer programs are stored in the storage medium, the computer programs comprising a sequence and program codes for controlling an execution process, the execution process comprising a ventilation area design method for a water tank, and the ventilation area design method comprises:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process, wherein a critical condition for bubbles entering the water tank via the drainage orifice at the bottom is determined based on a force balance at the drainage orifice at the bottom of the water tank, which is expressed as:
P
1
+
ρ
w
g
h
+
1
2
ρ
w
(
d
h
d
t
)
2
-
P
s
<
P
a
t
m
;
where P 1 is an air pressure (relative pressure) in a headspace of the water tank, Pa; P s is an additional pressure exerted at the drainage orifice by surface tension, Pa, and a magnitude of the additional pressure is determined based on an actual size of the drainage orifice of the water tank; P atm is a relative atmospheric pressure, Pa; ρ w is a density of water, kg/m 3 ; and g is acceleration of gravity, m/s 2 ;
S2: establishing a relationship between an area of a drainage orifice and an area of a ventilation slit of the water tank, which satisfies a condition of no bubble generation during the drainage process; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.
7 . A storage medium, wherein computer programs are stored in the storage medium, the computer programs comprising a sequence and program codes for controlling an execution process, the execution process comprising a ventilation area design method for a water tank, and the ventilation area design method comprises:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process;
S2: establishing a relationship between an area of a drainage orifice and an area of a ventilation slit of the water tank, which satisfies a condition of no bubble generation during the drainage process, wherein a relationship between an air pressure in a headspace of the water tank and a water depth during the drainage process is determined based on mass conservation and energy conservation laws, and based on a critical condition for bubbles entering the water tank via the drainage orifice at the bottom, a condition expression of no bubble generation is obtained:
-
g
ρ
w
ρ
a
(
k
0
+
1
)
ε
0
2
A
0
2
ρ
w
ε
0
2
A
0
2
(
ζ
0
+
1
-
ε
0
2
A
0
2
A
1
2
)
+
ρ
a
(
k
0
+
1
)
ε
0
2
A
0
2
h
+
ρ
w
g
h
+
1
2
ρ
w
(
d
h
d
t
)
2
-
P
s
<
P
a
t
m
,
where ζ 0 is a local head loss coefficient of the drainage orifice at the bottom and is dimensionless; z 1 and z 2 are position heads of a water surface inside the water tank and at the drainage orifice, m; v 1 and v 2 are average flow velocities of the water surface inside the water tank and a water surface at the drainage orifice, m/s; ρ a is air density, kg/m 3 ; k 0 is a local head loss coefficient of the ventilation slit and is dimensionless; h is a water depth in the water tank, and ε s is a contraction coefficient of the ventilation slit and is dimensionless; and A 0 is an area of the drainage orifice at the bottom of the water tank, and A s is an area of the ventilation slit at the top of the water tank; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.
8 . A water tank, comprising:
a ventilation slit located at a top of the water tank; and
a drainage orifice located at a bottom of the water tank, wherein the water tank is applicable for a ventilation area design method comprising:
S1: establishing a determination model for determining whether bubbles are generated during a drainage process;
S2: establishing a relationship between an area of the drainage orifice and an area of the ventilation slit, which satisfies a condition of no bubble generation during the drainage process; and
S3: calculating a minimum area of the ventilation slit required for no bubble generation during the drainage process, and adjusting the area of the ventilation slit of the water tank for drainage.